Optimization of solvothermal experimental parameters to control the size of KMgF3 nanoparticles for photodynamic therapy

Keuchkerian, R. - Suescun, L. - Crisci, C. - Rodríguez Chialanza, M. - Aguiar, I. - Martínez‑López, W. - Pérez Barthaburu, M. E.

Resumen:

Photodynamic therapy has advantages over conventional cancer superficial tumor therapies, such as insignificant side effects, minimal cumulative toxicity, excellent functional and cosmetic results, precise target treatment minimizing damage to neigh-boring normal tissues, and optimum long-term tumor regression. Upconversion nanoparticles have been proposed to extend photodynamic therapy for treating non-superficial tumors. In particular, compounds with low phonon energy, like KMgF3, with an optimal synthesis design and a suitable doping system, could be used for this therapy application. This particular matrix allows the incorporation of dopants as transition metals ions (as Mn2+) besides rare-earth elements, minimizing the use of the former. To obtain nanoparticles of suitable size for nanomedicine, we used a factorial experimental design to determine statistical synthesis conditions that significantly affect particles’ size. With the proposed synthesis method, it was possible to obtain KMgF3 nanoparticles with sizes ranging from 13.46±0.30 nm to 32.18±0.60 nm, values estimated with the XRD technique and with size distribution suitable for photodynamic therapy. We proved the good correlation between the particle size estimated from transmission electron microscopy images and powder X-ray diffraction measurements. According to the statistical analysis, the temperature and the interaction of temperature with MgCl2 concentration significantly affect the particle size (significance level of 0.05). The present work describes the influence of solvothermal synthesis parameters on the KMgF3 nanoparticle size for the first time. The results are particularly interesting for further doping the system and its functionalization, foreseeing the final application in cancer treatment.


Detalles Bibliográficos
2023
Agencia Nacional de Investigación e Innovación
Programa de Desarrollo de las Ciencias Básicas
Comisión Académica de Posgrado
Experimental design
Nano-fluoroperovskita
Photodynamic Therapy
Ciencias Naturales y Exactas
Ciencias Químicas
Química Inorgánica y Nuclear
Ingeniería y Tecnología
Nanotecnología
Nano-materiales
Inglés
Agencia Nacional de Investigación e Innovación
REDI
https://hdl.handle.net/20.500.12381/3609
Acceso abierto
Reconocimiento 4.0 Internacional. (CC BY)
_version_ 1814959254786801664
author Keuchkerian, R.
author2 Suescun, L.
Crisci, C.
Rodríguez Chialanza, M.
Aguiar, I.
Martínez‑López, W.
Pérez Barthaburu, M. E.
author2_role author
author
author
author
author
author
author_facet Keuchkerian, R.
Suescun, L.
Crisci, C.
Rodríguez Chialanza, M.
Aguiar, I.
Martínez‑López, W.
Pérez Barthaburu, M. E.
author_role author
bitstream.checksum.fl_str_mv a4ce09f01b5dd771727aa05c73851623
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bitstream.checksumAlgorithm.fl_str_mv MD5
MD5
bitstream.url.fl_str_mv https://redi.anii.org.uy/jspui/bitstream/20.500.12381/3609/4/license.txt
https://redi.anii.org.uy/jspui/bitstream/20.500.12381/3609/3/Manuscript_Keuchkerian_revised%20%281%29.pdf
collection REDI
dc.creator.none.fl_str_mv Keuchkerian, R.
Suescun, L.
Crisci, C.
Rodríguez Chialanza, M.
Aguiar, I.
Martínez‑López, W.
Pérez Barthaburu, M. E.
dc.date.accessioned.none.fl_str_mv 2024-08-29T13:00:47Z
dc.date.available.none.fl_str_mv 2024-08-29T13:00:47Z
dc.date.issued.none.fl_str_mv 2023-06-12
dc.description.abstract.none.fl_txt_mv Photodynamic therapy has advantages over conventional cancer superficial tumor therapies, such as insignificant side effects, minimal cumulative toxicity, excellent functional and cosmetic results, precise target treatment minimizing damage to neigh-boring normal tissues, and optimum long-term tumor regression. Upconversion nanoparticles have been proposed to extend photodynamic therapy for treating non-superficial tumors. In particular, compounds with low phonon energy, like KMgF3, with an optimal synthesis design and a suitable doping system, could be used for this therapy application. This particular matrix allows the incorporation of dopants as transition metals ions (as Mn2+) besides rare-earth elements, minimizing the use of the former. To obtain nanoparticles of suitable size for nanomedicine, we used a factorial experimental design to determine statistical synthesis conditions that significantly affect particles’ size. With the proposed synthesis method, it was possible to obtain KMgF3 nanoparticles with sizes ranging from 13.46±0.30 nm to 32.18±0.60 nm, values estimated with the XRD technique and with size distribution suitable for photodynamic therapy. We proved the good correlation between the particle size estimated from transmission electron microscopy images and powder X-ray diffraction measurements. According to the statistical analysis, the temperature and the interaction of temperature with MgCl2 concentration significantly affect the particle size (significance level of 0.05). The present work describes the influence of solvothermal synthesis parameters on the KMgF3 nanoparticle size for the first time. The results are particularly interesting for further doping the system and its functionalization, foreseeing the final application in cancer treatment.
dc.description.sponsorship.none.fl_txt_mv Agencia Nacional de Investigación e Innovación
Programa de Desarrollo de las Ciencias Básicas
Comisión Académica de Posgrado
dc.identifier.anii.es.fl_str_mv FCE_3_2020_1_162287
dc.identifier.doi.none.fl_str_mv 10.1007/s13204-023-02865-8
dc.identifier.uri.none.fl_str_mv https://hdl.handle.net/20.500.12381/3609
dc.language.iso.none.fl_str_mv eng
dc.publisher.es.fl_str_mv Springer
dc.rights.*.fl_str_mv Acceso abierto
dc.rights.license.none.fl_str_mv Reconocimiento 4.0 Internacional. (CC BY)
dc.rights.none.fl_str_mv info:eu-repo/semantics/openAccess
dc.source.es.fl_str_mv Applied Nanoscience
dc.source.none.fl_str_mv reponame:REDI
instname:Agencia Nacional de Investigación e Innovación
instacron:Agencia Nacional de Investigación e Innovación
dc.subject.anii.none.fl_str_mv Ciencias Naturales y Exactas
Ciencias Químicas
Química Inorgánica y Nuclear
Ingeniería y Tecnología
Nanotecnología
Nano-materiales
dc.subject.es.fl_str_mv Experimental design
Nano-fluoroperovskita
Photodynamic Therapy
dc.title.none.fl_str_mv Optimization of solvothermal experimental parameters to control the size of KMgF3 nanoparticles for photodynamic therapy
dc.type.es.fl_str_mv Artículo
dc.type.none.fl_str_mv info:eu-repo/semantics/article
dc.type.version.es.fl_str_mv Revisado
dc.type.version.none.fl_str_mv info:eu-repo/semantics/updatedVersion
description Photodynamic therapy has advantages over conventional cancer superficial tumor therapies, such as insignificant side effects, minimal cumulative toxicity, excellent functional and cosmetic results, precise target treatment minimizing damage to neigh-boring normal tissues, and optimum long-term tumor regression. Upconversion nanoparticles have been proposed to extend photodynamic therapy for treating non-superficial tumors. In particular, compounds with low phonon energy, like KMgF3, with an optimal synthesis design and a suitable doping system, could be used for this therapy application. This particular matrix allows the incorporation of dopants as transition metals ions (as Mn2+) besides rare-earth elements, minimizing the use of the former. To obtain nanoparticles of suitable size for nanomedicine, we used a factorial experimental design to determine statistical synthesis conditions that significantly affect particles’ size. With the proposed synthesis method, it was possible to obtain KMgF3 nanoparticles with sizes ranging from 13.46±0.30 nm to 32.18±0.60 nm, values estimated with the XRD technique and with size distribution suitable for photodynamic therapy. We proved the good correlation between the particle size estimated from transmission electron microscopy images and powder X-ray diffraction measurements. According to the statistical analysis, the temperature and the interaction of temperature with MgCl2 concentration significantly affect the particle size (significance level of 0.05). The present work describes the influence of solvothermal synthesis parameters on the KMgF3 nanoparticle size for the first time. The results are particularly interesting for further doping the system and its functionalization, foreseeing the final application in cancer treatment.
eu_rights_str_mv openAccess
format article
id REDI_16151f6b42d0f6beeac96ba54045e6dc
identifier_str_mv FCE_3_2020_1_162287
10.1007/s13204-023-02865-8
instacron_str Agencia Nacional de Investigación e Innovación
institution Agencia Nacional de Investigación e Innovación
instname_str Agencia Nacional de Investigación e Innovación
language eng
network_acronym_str REDI
network_name_str REDI
oai_identifier_str oai:redi.anii.org.uy:20.500.12381/3609
publishDate 2023
reponame_str REDI
repository.mail.fl_str_mv jmaldini@anii.org.uy
repository.name.fl_str_mv REDI - Agencia Nacional de Investigación e Innovación
repository_id_str 9421
rights_invalid_str_mv Reconocimiento 4.0 Internacional. (CC BY)
Acceso abierto
spelling Reconocimiento 4.0 Internacional. (CC BY)Acceso abiertoinfo:eu-repo/semantics/openAccess2024-08-29T13:00:47Z2024-08-29T13:00:47Z2023-06-12https://hdl.handle.net/20.500.12381/3609FCE_3_2020_1_16228710.1007/s13204-023-02865-8Photodynamic therapy has advantages over conventional cancer superficial tumor therapies, such as insignificant side effects, minimal cumulative toxicity, excellent functional and cosmetic results, precise target treatment minimizing damage to neigh-boring normal tissues, and optimum long-term tumor regression. Upconversion nanoparticles have been proposed to extend photodynamic therapy for treating non-superficial tumors. In particular, compounds with low phonon energy, like KMgF3, with an optimal synthesis design and a suitable doping system, could be used for this therapy application. This particular matrix allows the incorporation of dopants as transition metals ions (as Mn2+) besides rare-earth elements, minimizing the use of the former. To obtain nanoparticles of suitable size for nanomedicine, we used a factorial experimental design to determine statistical synthesis conditions that significantly affect particles’ size. With the proposed synthesis method, it was possible to obtain KMgF3 nanoparticles with sizes ranging from 13.46±0.30 nm to 32.18±0.60 nm, values estimated with the XRD technique and with size distribution suitable for photodynamic therapy. We proved the good correlation between the particle size estimated from transmission electron microscopy images and powder X-ray diffraction measurements. According to the statistical analysis, the temperature and the interaction of temperature with MgCl2 concentration significantly affect the particle size (significance level of 0.05). The present work describes the influence of solvothermal synthesis parameters on the KMgF3 nanoparticle size for the first time. The results are particularly interesting for further doping the system and its functionalization, foreseeing the final application in cancer treatment.Agencia Nacional de Investigación e InnovaciónPrograma de Desarrollo de las Ciencias BásicasComisión Académica de PosgradoengSpringerApplied Nanosciencereponame:REDIinstname:Agencia Nacional de Investigación e Innovacióninstacron:Agencia Nacional de Investigación e InnovaciónExperimental designNano-fluoroperovskitaPhotodynamic TherapyCiencias Naturales y ExactasCiencias QuímicasQuímica Inorgánica y NuclearIngeniería y TecnologíaNanotecnologíaNano-materialesOptimization of solvothermal experimental parameters to control the size of KMgF3 nanoparticles for photodynamic therapyArtículoRevisadoinfo:eu-repo/semantics/updatedVersioninfo:eu-repo/semantics/articleUniversidad de la República//Ciencias Naturales y Exactas/Ciencias Químicas/Química Inorgánica y Nuclear//Ingeniería y Tecnología/Nanotecnología/Nano-materialesKeuchkerian, R.Suescun, L.Crisci, C.Rodríguez Chialanza, M.Aguiar, I.Martínez‑López, W.Pérez Barthaburu, M. E.LICENSElicense.txtlicense.txttext/plain; charset=utf-84967https://redi.anii.org.uy/jspui/bitstream/20.500.12381/3609/4/license.txta4ce09f01b5dd771727aa05c73851623MD54ORIGINALManuscript_Keuchkerian_revised (1).pdfManuscript_Keuchkerian_revised (1).pdfapplication/pdf3595051https://redi.anii.org.uy/jspui/bitstream/20.500.12381/3609/3/Manuscript_Keuchkerian_revised%20%281%29.pdf4cae500cc5d0740f339f640c758699cbMD5320.500.12381/36092024-08-29 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- Agencia Nacional de Investigación e Innovaciónfalse
spellingShingle Optimization of solvothermal experimental parameters to control the size of KMgF3 nanoparticles for photodynamic therapy
Keuchkerian, R.
Experimental design
Nano-fluoroperovskita
Photodynamic Therapy
Ciencias Naturales y Exactas
Ciencias Químicas
Química Inorgánica y Nuclear
Ingeniería y Tecnología
Nanotecnología
Nano-materiales
status_str updatedVersion
title Optimization of solvothermal experimental parameters to control the size of KMgF3 nanoparticles for photodynamic therapy
title_full Optimization of solvothermal experimental parameters to control the size of KMgF3 nanoparticles for photodynamic therapy
title_fullStr Optimization of solvothermal experimental parameters to control the size of KMgF3 nanoparticles for photodynamic therapy
title_full_unstemmed Optimization of solvothermal experimental parameters to control the size of KMgF3 nanoparticles for photodynamic therapy
title_short Optimization of solvothermal experimental parameters to control the size of KMgF3 nanoparticles for photodynamic therapy
title_sort Optimization of solvothermal experimental parameters to control the size of KMgF3 nanoparticles for photodynamic therapy
topic Experimental design
Nano-fluoroperovskita
Photodynamic Therapy
Ciencias Naturales y Exactas
Ciencias Químicas
Química Inorgánica y Nuclear
Ingeniería y Tecnología
Nanotecnología
Nano-materiales
url https://hdl.handle.net/20.500.12381/3609